Behavior-aware Account De-anonymization on Ethereum Interaction Graph
Jiajun Zhou, Chenkai Hu, Jianlei Chi, Jiajing Wu, Meng Shen, Qi Xuan

TL;DR
This paper introduces Ethident, a graph neural network framework that effectively de-anonymizes Ethereum accounts by analyzing behavior patterns, aiding in market regulation and security on blockchain platforms.
Contribution
The paper proposes a novel end-to-end graph neural network framework with hierarchical attention and contrastive learning for Ethereum account de-anonymization.
Findings
Achieves 1.13% to 4.93% improvement over previous methods.
Effectively identifies behaviors of both legitimate and malicious Ethereum participants.
Demonstrates potential for risk assessment and market regulation.
Abstract
Blockchain technology has the characteristics of decentralization, traceability and tamper-proof, which creates a reliable decentralized trust mechanism, further accelerating the development of blockchain finance. However, the anonymization of blockchain hinders market regulation, resulting in increasing illegal activities such as money laundering, gambling and phishing fraud on blockchain financial platforms. Thus, financial security has become a top priority in the blockchain ecosystem, calling for effective market regulation. In this paper, we consider identifying Ethereum accounts from a graph classification perspective, and propose an end-to-end graph neural network framework named Ethident, to characterize the behavior patterns of accounts and further achieve account de-anonymization. Specifically, we first construct an Account Interaction Graph (AIG) using raw Ethereum data. Then…
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Taxonomy
TopicsBlockchain Technology Applications and Security · FinTech, Crowdfunding, Digital Finance
